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from faster_whisper import WhisperModel | |
from fastapi import FastAPI | |
from video import download_convert_video_to_audio | |
import yt_dlp | |
import uuid | |
import os | |
app = FastAPI() | |
model_size = "tiny" | |
# or run on GPU with INT8 | |
# model = WhisperModel(model_size, device="cuda", compute_type="int8_float16") | |
# or run on CPU with INT8 | |
model = WhisperModel(model_size, device="cpu", compute_type="int8") | |
def segment_to_dict(segment): | |
segment = segment._asdict() | |
if segment["words"] is not None: | |
segment["words"] = [word._asdict() for word in segment["words"]] | |
return segment | |
async def download_video(video_url: str): | |
download_convert_video_to_audio(yt_dlp, video_url, f"/home/user/{uuid.uuid4().hex}") | |
async def transcribe_video(video_url: str, beam_size: int = 5): | |
print("doing hex") | |
rand_id = uuid.uuid4().hex | |
print("doing download") | |
download_convert_video_to_audio(yt_dlp, video_url, f"/home/user/{rand_id}") | |
segments, info = model.transcribe(f"/home/user/{rand_id}.mp3", beam_size=beam_size, word_timestamps=True) | |
segments = [segment_to_dict(segment) for segment in segments] | |
total_duration = round(info.duration, 2) # Same precision as the Whisper timestamps. | |
print(info) | |
os.remove(f"/home/user/{rand_id}.mp3") | |
print("Detected language '%s' with probability %f" % (info.language, info.language_probability)) | |
return segments | |
# print("Detected language '%s' with probability %f" % (info.language, info.language_probability)) | |
# for segment in segments: | |
# print("[%.2fs -> %.2fs] %s" % (segment.start, segment.end, segment.text)) |